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High Performance Sequential Execution In Fine-Grain Multicore Processors Via Core Aggregation

机译:通过核心聚合在细粒度多核处理器中执行高性能顺序执行

摘要

This dissertation presents core fusion, a reconfigurable chip multiprocessor (CMP) architecture where groups of fundamentally independent cores can dynamically morph into a larger CPU, or they can be used as distinct processing elements, as needed at run time by applications. Core fusion improves sequentialcode performance and thus gracefully accommodates software diversity in future’s highly-parallel CMPs. It provides a single execution model across all configurations, requires no additional programming effort or specialized compiler support, maintains ISA compatibility, and leverages mature micro-architecture technology. We first present an effective approach to dynamically fuse multiple narrowissue out-of-order cores into a more powerful out-of-order execution engine. The use of out-of-order base cores provides the design with valuable opportunities for latency hiding. Next, we present a second set of mechanisms to dynamically fuse multiple in-order cores into a more powerful out-of-order execution engine. In-order cores are extremely power-efficient and simple, and they help maximize core count, which is ideal for exploiting thread-level parallelism (TLP). However, sequential-code performance is significantly degraded. Enabling core fusion on such substrates proves to be very effective in boosting performance, and only with relatively small hardware overhead.
机译:本文介绍了核心融合,一种可重构的芯片多处理器(CMP)架构,其中,基本独立的核心组可以动态地转变为更大的CPU,或者可以根据应用程序在运行时的需要将它们用作不同的处理元素。核心融合提高了顺序代码的性能,从而在未来的高度并行CMP中很好地适应了软件的多样性。它提供跨所有配置的单一执行模型,无需额外的编程工作或专业的编译器支持,保持ISA兼容性,并利用成熟的微体系结构技术。我们首先提出一种有效的方法,将多个窄问题无序内核动态融合到功能更强大的无序执行引擎中。乱序的基本内核的使用为设计提供了隐藏延迟的宝贵机会。接下来,我们提出了第二组机制,可将多个有序内核动态融合到功能更强大的无序执行引擎中。有序内核非常高效且简单,它们有助于最大化内核数,这对于利用线程级并行性(TLP)是理想的选择。但是,顺序代码的性能明显下降。事实证明,在这种基板上启用核融合对于提高性能非常有效,而且硬件开销相对较小。

著录项

  • 作者

    Kirman Meyrem;

  • 作者单位
  • 年度 2010
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_US
  • 中图分类

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